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Point-dipole approximation for small systems of strongly coupled radiating nanorods

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Point-dipole approximation for small systems of strongly coupled radiating nanorods. / Watson, Derek W.; Jenkins, Stewart D.; Fedotov, Vassili A. et al.
In: Scientific Reports, Vol. 9, 5707, 05.04.2019.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

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Watson DW, Jenkins SD, Fedotov VA, Ruostekoski J. Point-dipole approximation for small systems of strongly coupled radiating nanorods. Scientific Reports. 2019 Apr 5;9:5707. doi: 10.1038/s41598-019-41327-6

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Watson, Derek W. ; Jenkins, Stewart D. ; Fedotov, Vassili A. et al. / Point-dipole approximation for small systems of strongly coupled radiating nanorods. In: Scientific Reports. 2019 ; Vol. 9.

Bibtex

@article{fb0d69beb05548e6a956774d3de3d797,
title = "Point-dipole approximation for small systems of strongly coupled radiating nanorods",
abstract = "Systems of closely-spaced resonators can be strongly coupled by interactions mediated by scattered electromagnetic fields. In large systems the resulting response has been shown to be more sensitive to these collective interactions than to the detailed structure of individual resonators. Attempts to describe such systems have resulted in point-dipole approximations to resonators that are computationally efficient for large resonator ensembles. Here we provide a detailed study for the validity of point dipole approximations in small systems of strongly coupled plasmonic nanorods, including the cases of both super-radiantand subradiant excitations, where the characteristics of the excitation depends on the spatial separation between the nanorods. We show that over an appreciable range of rod lengths centered on 210 nm, when the relative separation kl in terms of the resonance wave number of light k satisfies kl >pi/2, the point electric dipole model becomes accurate. However, when theresonators are closer, the finite-size and geometry of the resonators modifies the excitation modes, in particular the cooperative mode line shifts of the point dipole approximation begin to rapidly diverge at small separations. We also construct simplified effective models by describing a pair of nanorods as a single effective metamolecule.",
author = "Watson, {Derek W.} and Jenkins, {Stewart D.} and Fedotov, {Vassili A.} and Janne Ruostekoski",
year = "2019",
month = apr,
day = "5",
doi = "10.1038/s41598-019-41327-6",
language = "English",
volume = "9",
journal = "Scientific Reports",
issn = "2045-2322",
publisher = "Nature Publishing Group",

}

RIS

TY - JOUR

T1 - Point-dipole approximation for small systems of strongly coupled radiating nanorods

AU - Watson, Derek W.

AU - Jenkins, Stewart D.

AU - Fedotov, Vassili A.

AU - Ruostekoski, Janne

PY - 2019/4/5

Y1 - 2019/4/5

N2 - Systems of closely-spaced resonators can be strongly coupled by interactions mediated by scattered electromagnetic fields. In large systems the resulting response has been shown to be more sensitive to these collective interactions than to the detailed structure of individual resonators. Attempts to describe such systems have resulted in point-dipole approximations to resonators that are computationally efficient for large resonator ensembles. Here we provide a detailed study for the validity of point dipole approximations in small systems of strongly coupled plasmonic nanorods, including the cases of both super-radiantand subradiant excitations, where the characteristics of the excitation depends on the spatial separation between the nanorods. We show that over an appreciable range of rod lengths centered on 210 nm, when the relative separation kl in terms of the resonance wave number of light k satisfies kl >pi/2, the point electric dipole model becomes accurate. However, when theresonators are closer, the finite-size and geometry of the resonators modifies the excitation modes, in particular the cooperative mode line shifts of the point dipole approximation begin to rapidly diverge at small separations. We also construct simplified effective models by describing a pair of nanorods as a single effective metamolecule.

AB - Systems of closely-spaced resonators can be strongly coupled by interactions mediated by scattered electromagnetic fields. In large systems the resulting response has been shown to be more sensitive to these collective interactions than to the detailed structure of individual resonators. Attempts to describe such systems have resulted in point-dipole approximations to resonators that are computationally efficient for large resonator ensembles. Here we provide a detailed study for the validity of point dipole approximations in small systems of strongly coupled plasmonic nanorods, including the cases of both super-radiantand subradiant excitations, where the characteristics of the excitation depends on the spatial separation between the nanorods. We show that over an appreciable range of rod lengths centered on 210 nm, when the relative separation kl in terms of the resonance wave number of light k satisfies kl >pi/2, the point electric dipole model becomes accurate. However, when theresonators are closer, the finite-size and geometry of the resonators modifies the excitation modes, in particular the cooperative mode line shifts of the point dipole approximation begin to rapidly diverge at small separations. We also construct simplified effective models by describing a pair of nanorods as a single effective metamolecule.

U2 - 10.1038/s41598-019-41327-6

DO - 10.1038/s41598-019-41327-6

M3 - Journal article

VL - 9

JO - Scientific Reports

JF - Scientific Reports

SN - 2045-2322

M1 - 5707

ER -